US4652122A - Gust detection system - Google Patents

Gust detection system Download PDF

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US4652122A
US4652122A US06/749,047 US74904785A US4652122A US 4652122 A US4652122 A US 4652122A US 74904785 A US74904785 A US 74904785A US 4652122 A US4652122 A US 4652122A
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aircraft
airspeed
scanning
velocity
ahead
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US06/749,047
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Robert Zincone
Evan A. Fradenburgh
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Raytheon Technologies Corp
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United Technologies Corp
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Assigned to UNITED TECHNOLOGIES CORPORATION, A CORP OF DE. reassignment UNITED TECHNOLOGIES CORPORATION, A CORP OF DE. ASSIGNMENT OF ASSIGNORS INTEREST. Assignors: ZINCONE, ROBERT, FRADENBURGH, EVAN A.
Application filed by United Technologies Corp filed Critical United Technologies Corp
Priority to US06/749,047 priority Critical patent/US4652122A/en
Priority to GB8613398A priority patent/GB2176965B/en
Priority to IT20871/86A priority patent/IT1204863B/en
Priority to DE19863620636 priority patent/DE3620636A1/en
Priority to JP61146748A priority patent/JPS623665A/en
Priority to FR868609223A priority patent/FR2584191B1/en
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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S17/00Systems using the reflection or reradiation of electromagnetic waves other than radio waves, e.g. lidar systems
    • G01S17/88Lidar systems specially adapted for specific applications
    • G01S17/95Lidar systems specially adapted for specific applications for meteorological use
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05DSYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
    • G05D1/00Control of position, course or altitude of land, water, air, or space vehicles, e.g. automatic pilot
    • G05D1/04Control of altitude or depth
    • G05D1/06Rate of change of altitude or depth
    • G05D1/0607Rate of change of altitude or depth specially adapted for aircraft
    • G05D1/0615Rate of change of altitude or depth specially adapted for aircraft to counteract a perturbation, e.g. gust of wind
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01WMETEOROLOGY
    • G01W1/00Meteorology
    • G01W2001/003Clear air turbulence detection or forecasting, e.g. for aircrafts
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02ATECHNOLOGIES FOR ADAPTATION TO CLIMATE CHANGE
    • Y02A90/00Technologies having an indirect contribution to adaptation to climate change
    • Y02A90/10Information and communication technologies [ICT] supporting adaptation to climate change, e.g. for weather forecasting or climate simulation

Definitions

  • the invention relates to techniques for detecting gusts and windshear ahead of an aircraft.
  • air turbulence ahead of an aircraft is determined by scanning the beam of a variable focal distance laser airspeed unit close-in to the aircraft to determine aircraft airspeed and angle of attack, and scanning the beam at distances farther out from the aircraft and measuring airspeed. Discrepancies between the closein measurement and the farther out measurement are quantifiably indicative of air turbulence.
  • FIG. 1 is a schematic highlighting the basic elements of the gust detection system of this invention.
  • the system emits a scanning beam 12.
  • FIG. 2 is a schematic of the beam scanning in elevation.
  • FIG. 3 is a vector diagram of the beam scanning in elevation.
  • FIG. 4 is a schematic of the beam scanning conically at a fixed apex angle, at various distances ahead of the system.
  • FIG. 5 is a schematic of the beam scanning conically at a variable apex angle, at various distances ahead of the system.
  • FIG. 6 is a schematic of the beam scanning in a cruciform scan pattern, at various distances ahead of the system.
  • FIG. 7 is a schematic of the beam scanning in elevation only, at various distances ahead of the system.
  • FIG. 8 is a graph and schematic of the measured velocity components for a continuous vertical scan for calm air or near in to the system.
  • FIG. 9 is a replot for the conditions of FIG. 8 using a different reference.
  • FIG. 10 is a graph and schematic of two scans; one close in, and another more distant scan in a region wherein there is a uniform up-gust.
  • FIG. 11 is a graph and schematic of two scans; one close in, and another more distant scan in a region wherein there is a uniform head-on gust.
  • FIG. 12 is a graph and a schematic of three scans; one close in, and two more distant scans in a region where there is a vortex. Another graph shows the vortex velocity profile.
  • FIG. 13 is a plan view schematic of the beam scanning in various vertical planes at different azimuths.
  • FIG. 14 is a gross operational block diagram for the general case of operation of the gust detection system of this invention.
  • FIG. 1 shows the basic configuration for the gust detection system 10 of this invention.
  • a laser airspeed unit 11 projects a laser beam 12 through a diverging lens 14 to a scanning mirror 16.
  • the scanning mirror is operated by mechanisms (not shown) which will tilt the mirror in the directions shown by the arrows 18 and 20, about the aircraft pitch axis 22 for elevation scan, and about the aircraft yaw axis 24 for azimuth scan.
  • a focusing lens 26 is movable along an optical axis 28, via a suitable mechanism, to converge the beam 12 at a point P, a desired distance in front of the aircraft; for example, between 10 and 100 meters.
  • a pulsed laser allows for lighter weight and lower power, and distance to the reflecting aerosols is simply a matter of measuring the time delay between a transmitted and subsequent reflected pulse. With either type of laser, the doppler shift of the reflected beam converts directly to aircraft velocity relative to the aerosol "target".
  • the laser airspeed unit 10 contains the necessary circuitry for resolving distance and relative velocity, in a known manner.
  • FIG. 2 illustrates how the beam might be aimed in two successive elevations: an angle ⁇ 1 above the optical axis 28 converging at point p' and an angle ⁇ 2 below the optical axis 28 converging at a point p".
  • This provides two components of velocity: V 1 measured parallel to the upper beam and V 2 measured parallel to the lower beam.
  • the resultant velocity R and its angle of attack (a) to the optical axis 28 are determined by the vector diagram in FIG. 3 and the following equations.
  • FIG. 3 vector diagram assumes that the velocity vectors V 1 and V 2 are measured at two points sufficiently close together so that the true total velocity vector has the same magnitude and direction at each point. In still air (no turbulence) this will be generally true, but in gusty air it will not be generally true. If the air is scanned quite close to the aircraft (10 meters), the assumption of the same total velocity at the two points, or over the scanned region, will be valid for most practical purposes. Thus, it is advisable to scan close to the aircraft to measure the aircraft true airspeed (velocity, angle of attack, and sideslip angle). Gust information is then obtained by scanning at additional distances farther from the aircraft.
  • FIGS. 4-7 Many scanning patterns are possible; some possible patterns are illustrated in FIGS. 4-7.
  • FIG. 4 shows the scanning pattern that would result from adapting a variable focal distance focusing lens to a gust detection system having a fixed conical sweep angle.
  • the fixed apex angle (b) of the conical sweep results in larger circles 30-32 as the focal distance (f 1 ,f 2 ,f 3 ) is increased, a disadvantage if it is desired to detect fine structure of the air turbulence at considerable distance from the aircraft.
  • FIG. 5 shows another conical scanning pattern with a variable apex angle. This feature can be used to keep the diameter of the swept circles 34-36 constant with distance, or alternately can provide multiple sweeps of varying diameter at given focal distances (f 1 ,f 2 ,f 3 ) from the aircraft.
  • FIG. 6 shows a cruciform scan pattern, where independent sweeps in vertical and horizontal planes are made at each focal distance (f 1 ,f 2 ,f 3 ) of interest.
  • FIG. 7 shows a scan in the vertical plane only.
  • the aircraft responds primarily in the pitch axis, or plane of symmetry; the response to lateral gust inputs is generally much less and therefore of less interest.
  • V i is plotted versus the laser beam angle ⁇ , measured with respect to the optical axis, positive upward
  • the general shape of the curve will be as in FIG. 8 if the air is calm or if the scan is close to the aircraft.
  • the peak of the curve will be on the left if the angle of attack of the optical axis is positive, i.e. aimed above the flight path.
  • FIG. 10 shows the results of two vertical scans when the more distant scan is in a region with a uniform up-gust having a velocity V gust .
  • Scan 2 distant from the aircraft, produces a velocity profile which increases the indicated speed for beam angles below the flight path, i.e. ( ⁇ +a) negative, and decreases the indicated speed for beam angles above the flight path, i.e. ( ⁇ +a) positive, according to the formula,
  • the incremental speed is minus the gust velocity times the sine of the angle ( ⁇ +a).
  • FIG. 11 shows comparable results for an oncoming head-on gust having a velocity V gust .
  • Scan 1 near the aircraft, is determined accordinq to the formula,
  • any uniform gust situation can be represented as some combination of vertical and horizontal gusts, so that the equations related to FIGS. 10 and 11 may be used to derive the two gust velocity components.
  • the data will show scatter and will not follow the ideal profiles precisely. Standard curve-fitting techniques can be used to establish the principal gust velocity components, and the magnitude of the scatter will correspond to a general turbulence superimposed on the principal gust.
  • Trailing vortices are characterized by relatively small size, high velocities around the core, and a life up to several minutes, depending on a number of factors. Because of their intensity they can sometimes represent a serious gust encounter to be avoided. They also provide evidence of the previous passage of another aircraft, and so can provide important intelligence information in a military engagement.
  • FIG. 12 shows indicated velocity profiles representative of a vortex crossing below the flight path of the scanning aircraft.
  • the Scan 1 is close to the aircraft.
  • the Scan 2 detects the presence of a vortex, revealed by the characteristic nonlinear departure of the indicated velocity from the Scan 1 profile.
  • Scan 3 of FIG. 12 goes through the center of the vortex, and the indicated velocity profile for Scan 3 shows the large local disturbance around the vortex core, which is centered about the vortex core, which is centered about the elevation at which the velocity profile crosses the Scan 1 profile.
  • FIG. 13 illustrates how the ability to alter the azimuth of the scanning beam can be utilized to locate a vortex in three dimensions.
  • This shows an aircraft in plan view, initially scanning vertically in the plane of symmetry (in and out of the drawing). Once a vortex is detected, additional scans in vertical planes with various azimuth orientations can be used to locate the center of the vortex as a line in three-dimensional space.
  • the operation of the Gust Detection System is illustrated in block diagram form in FIG. 14. A verbal description of the operation of the system for the general case is as follows:
  • the scanning frequency has not been mentioned above.
  • the appropriate frequency is dependent on the speed of flight; a high speed airplane will fly into a nearby gust more rapidly than a helicopter flying slowly in the nap of the earth. It will usually be desired to have at least a one-second warning to allow for computation time with an on-board computer and to activate the controls.
  • the laser beam travels at the speed of light and the computations are very rapid.
  • the scanning mechanism and focal length changes involve relatively low inertias; with modern servo actuators a scan should be possible in 1/20 second or less and a complete cycle with multiple focal distances should be possible in less than one-half second, and a complete update should be possible two times per second or faster.
  • the control inputs provided by the Gust Detection System are conveniently provided to an automatic Stability Augmentation System (SAS) having high rates and low authority.
  • SAS Stability Augmentation System
  • the rate, or gain, of such a system is either fixed, varied with airspeed, or varied by means of an adaptive controller. This is discussed in detail in commonly-owned U.S. Pat. No. 4,032,033 (Maciolek, 1977), entitled AUTOMATIC GAIN CONTROL FOR STABILITY AUGMENTATION SYSTEMS, which discloses a technique for automatically varying the gain of a SAS in accordance with gross weight and deviations of the center of gravity of the aircraft.
  • control inputs could be provided to close the switches 50, 54, 56 therein which vary the gain of the SAS in stepwise fashion.
  • control inputs of this system can be utilized, in conjunction with an existing SAS so that oncoming gust effects can be both anticipated and alleviated.

Abstract

Air turbulence ahead of an aircraft is determined by scanning the beam of a variable focal distance laser airspeed unit close-in to the aircraft to determine aircraft airspeed and angle of attack, and scanning the beam at distances farther out from the aircraft and measuring airspeed. Discrepancies between the close-in measurement and the farther out measurement are quantifiably indicative of air turbulence.

Description

TECHNICAL FIELD OF THE INVENTION
The invention relates to techniques for detecting gusts and windshear ahead of an aircraft.
BACKGROUND OF THE INVENTION
Clear air turbulence can occur either naturally or as a result of the passage of aircraft which leave vortex trails and downwash patterns. Encountering such phenomena in a highly responsive aircraft can cause undesirable buffeting, load factor problems, etc., despite the existence of Stability Augmentation Systems (SAS). Not only is such unpredictable aircraft response distracting from a pilot or passenger's point of view, but it can also affect the weapon aiming/delivery capability of military aircraft.
DISCLOSURE OF THE INVENTION
Therefore, it is an object of the invention to provide a technique for detecting clear air turbulence, thereby enhancing aircraft safety, smoothness, and stability.
According to the invention, air turbulence ahead of an aircraft is determined by scanning the beam of a variable focal distance laser airspeed unit close-in to the aircraft to determine aircraft airspeed and angle of attack, and scanning the beam at distances farther out from the aircraft and measuring airspeed. Discrepancies between the closein measurement and the farther out measurement are quantifiably indicative of air turbulence.
Other objects, features and advantages of the invention will become apparent in light of the following description thereof.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a schematic highlighting the basic elements of the gust detection system of this invention. The system emits a scanning beam 12.
FIG. 2 is a schematic of the beam scanning in elevation.
FIG. 3 is a vector diagram of the beam scanning in elevation.
FIG. 4 is a schematic of the beam scanning conically at a fixed apex angle, at various distances ahead of the system.
FIG. 5 is a schematic of the beam scanning conically at a variable apex angle, at various distances ahead of the system.
FIG. 6 is a schematic of the beam scanning in a cruciform scan pattern, at various distances ahead of the system.
FIG. 7 is a schematic of the beam scanning in elevation only, at various distances ahead of the system.
FIG. 8 is a graph and schematic of the measured velocity components for a continuous vertical scan for calm air or near in to the system.
FIG. 9 is a replot for the conditions of FIG. 8 using a different reference.
FIG. 10 is a graph and schematic of two scans; one close in, and another more distant scan in a region wherein there is a uniform up-gust.
FIG. 11 is a graph and schematic of two scans; one close in, and another more distant scan in a region wherein there is a uniform head-on gust.
FIG. 12 is a graph and a schematic of three scans; one close in, and two more distant scans in a region where there is a vortex. Another graph shows the vortex velocity profile.
FIG. 13 is a plan view schematic of the beam scanning in various vertical planes at different azimuths.
FIG. 14 is a gross operational block diagram for the general case of operation of the gust detection system of this invention.
BEST MODE FOR CARRYING OUT THE INVENTION
It is known to monitor clear air turbulence (CAT) in an aircraft's flight path by projecting a laser beam in the flight path of the aircraft and detecting the backscattered radiation from atmospheric aerosols. For instance, U.S. Pat. No. 4,359,640 (Geiger, 1982), entitled CLEAR AIR TURBULENCE DETECTION, shows such a system which is limited, however, to using a pair of pulse lasers for generating a pair of coherent beams arranged to converge at a point in front of the aircraft's flight path (claim 1, therein).
In commonly-owned U.S. Pat. No. 4,340,299 (Mongeon, 1982), entitled OPTICAL DOPPLER RADAR SYSTEM USING A CONICALLY SCANNED LASER BEAM, a laser of a first frequency is conically scanned on a surface from an elevated position and the beam is scattered by the surface. A return beam is formed from this scattered beam and is mixed with a single side band suppressed carrier laser beam at an offset frequency, producing an electrical signal whose frequency shifts from the offset frequency in proportion to the velocity relative to the surface. That shift is a function of the scan position and the direction of movement. Velocity components of the signal reflecting drift velocity and heading velocity are resolved from this signal by referencing it to the scan position at drift and heading positions. The signal component reflecting elevation velocity is resolved by removing those scan dependent components. The scanning system and signal processing techniques of the Mongeon Patent are especially well-suited to the present invention.
FIG. 1 shows the basic configuration for the gust detection system 10 of this invention.
A laser airspeed unit 11 projects a laser beam 12 through a diverging lens 14 to a scanning mirror 16. The scanning mirror is operated by mechanisms (not shown) which will tilt the mirror in the directions shown by the arrows 18 and 20, about the aircraft pitch axis 22 for elevation scan, and about the aircraft yaw axis 24 for azimuth scan. A focusing lens 26 is movable along an optical axis 28, via a suitable mechanism, to converge the beam 12 at a point P, a desired distance in front of the aircraft; for example, between 10 and 100 meters.
It is preferable to use a pulsed laser, rather than a continuous wave type in the Laser Airspeed Unit. A pulsed laser allows for lighter weight and lower power, and distance to the reflecting aerosols is simply a matter of measuring the time delay between a transmitted and subsequent reflected pulse. With either type of laser, the doppler shift of the reflected beam converts directly to aircraft velocity relative to the aerosol "target". The laser airspeed unit 10 contains the necessary circuitry for resolving distance and relative velocity, in a known manner.
To determine the resultant velocity vector between the aircraft and the aerosol target it is necessary to scan the beam in both elevation and azimuth. FIG. 2 illustrates how the beam might be aimed in two successive elevations: an angle θ1 above the optical axis 28 converging at point p' and an angle θ2 below the optical axis 28 converging at a point p". This provides two components of velocity: V1 measured parallel to the upper beam and V2 measured parallel to the lower beam. The resultant velocity R and its angle of attack (a) to the optical axis 28 are determined by the vector diagram in FIG. 3 and the following equations.
V.sub.1 =R cos (θ.sub.1 +a)
V.sub.2 =R cos (θ.sub.2 -a)
A similar procedure, requiring at least two azimuthal positions of the beam, is followed to establish the lateral component of velocity which may be represented as a sideslip angle. In practice, a continuous sweep in elevation and azimuth, such as a conical sweep, is more likely to be used than discrete points.
The FIG. 3 vector diagram assumes that the velocity vectors V1 and V2 are measured at two points sufficiently close together so that the true total velocity vector has the same magnitude and direction at each point. In still air (no turbulence) this will be generally true, but in gusty air it will not be generally true. If the air is scanned quite close to the aircraft (10 meters), the assumption of the same total velocity at the two points, or over the scanned region, will be valid for most practical purposes. Thus, it is advisable to scan close to the aircraft to measure the aircraft true airspeed (velocity, angle of attack, and sideslip angle). Gust information is then obtained by scanning at additional distances farther from the aircraft.
Many scanning patterns are possible; some possible patterns are illustrated in FIGS. 4-7.
FIG. 4 shows the scanning pattern that would result from adapting a variable focal distance focusing lens to a gust detection system having a fixed conical sweep angle. The fixed apex angle (b) of the conical sweep results in larger circles 30-32 as the focal distance (f1,f2,f3) is increased, a disadvantage if it is desired to detect fine structure of the air turbulence at considerable distance from the aircraft.
FIG. 5 shows another conical scanning pattern with a variable apex angle. This feature can be used to keep the diameter of the swept circles 34-36 constant with distance, or alternately can provide multiple sweeps of varying diameter at given focal distances (f1,f2,f3) from the aircraft.
FIG. 6 shows a cruciform scan pattern, where independent sweeps in vertical and horizontal planes are made at each focal distance (f1,f2,f3) of interest.
FIG. 7 shows a scan in the vertical plane only. For most gust situations of interest, the aircraft responds primarily in the pitch axis, or plane of symmetry; the response to lateral gust inputs is generally much less and therefore of less interest.
The measured velocity components for a continuous vertical scan for various possible atmospheric conditions are shown in FIGS. 8 through 12. It is assumed that lateral velocity components are small enough to be neglected. If the indicated velocity Vi is plotted versus the laser beam angle θ, measured with respect to the optical axis, positive upward, the general shape of the curve will be as in FIG. 8 if the air is calm or if the scan is close to the aircraft. Vo is the magnitude of the peak of the curve, which occurs at θ=-a, where a is the angle of attack of the aircraft with respect to the optical axis. The value of Vi will vary according to the formula Vi =Vo cos (θ+a). The peak of the curve will be on the left if the angle of attack of the optical axis is positive, i.e. aimed above the flight path.
If the curve of FIG. 8 is replotted as Vi versus (θ+a), the curve becomes symmetrical about the vertical axis of the plot, as shown in FIG. 9. This still represents the calm air case, or the case for a scan close to the aircraft on a turbulent day.
FIG. 10 shows the results of two vertical scans when the more distant scan is in a region with a uniform up-gust having a velocity Vgust. Scan 1, near the aircraft, produces an indicated velocity profile identical in character to that shown in FIG. 9, according to the formula Vi =Vo cos (θ+a). Scan 2, distant from the aircraft, produces a velocity profile which increases the indicated speed for beam angles below the flight path, i.e. (θ+a) negative, and decreases the indicated speed for beam angles above the flight path, i.e. (θ+a) positive, according to the formula,
V.sub.i =V.sub.o cos (θ+a)-V.sub.gust sin (θ+a).
The incremental speed is minus the gust velocity times the sine of the angle (θ+a).
FIG. 11 shows comparable results for an oncoming head-on gust having a velocity Vgust. Scan 1, near the aircraft, is determined accordinq to the formula,
V.sub.i =V.sub.o cos (θ+a);
and Scan 2, distant from the aircraft, is determined according to the formula,
V.sub.i =(V.sub.o +V.sub.gust) cos (θ+a).
In this case the shape of the indicated velocity profile is unchanged but the magnitudes are increased by a constant percentage.
Any uniform gust situation can be represented as some combination of vertical and horizontal gusts, so that the equations related to FIGS. 10 and 11 may be used to derive the two gust velocity components. In practice, the data will show scatter and will not follow the ideal profiles precisely. Standard curve-fitting techniques can be used to establish the principal gust velocity components, and the magnitude of the scatter will correspond to a general turbulence superimposed on the principal gust.
One type of departure from a uniform gust that is of particular interest is the presence of a trailing vortex produced by an aircraft having flown past the vicinity. Trailing vortices, usually found in pairs, are characterized by relatively small size, high velocities around the core, and a life up to several minutes, depending on a number of factors. Because of their intensity they can sometimes represent a serious gust encounter to be avoided. They also provide evidence of the previous passage of another aircraft, and so can provide important intelligence information in a military engagement.
FIG. 12 shows indicated velocity profiles representative of a vortex crossing below the flight path of the scanning aircraft. As in previous examples, the Scan 1 is close to the aircraft. The Scan 2 detects the presence of a vortex, revealed by the characteristic nonlinear departure of the indicated velocity from the Scan 1 profile. By further adjustment of the beam focal distance, it is possible to locate the core of the vortex; this will be a scan with the largest indicated velocity deviation from the Scan 1 profile. Scan 3 of FIG. 12 goes through the center of the vortex, and the indicated velocity profile for Scan 3 shows the large local disturbance around the vortex core, which is centered about the vortex core, which is centered about the elevation at which the velocity profile crosses the Scan 1 profile.
FIG. 13 illustrates how the ability to alter the azimuth of the scanning beam can be utilized to locate a vortex in three dimensions. This shows an aircraft in plan view, initially scanning vertically in the plane of symmetry (in and out of the drawing). Once a vortex is detected, additional scans in vertical planes with various azimuth orientations can be used to locate the center of the vortex as a line in three-dimensional space. The operation of the Gust Detection System is illustrated in block diagram form in FIG. 14. A verbal description of the operation of the system for the general case is as follows:
(a) Conduct a circular or cruciform scan with the laser airspeed sensor close to the aircraft. Calculate the velocity vector Vo relative to the aircraft reference axis, including angle of attack a and sideslip angle B.
(b) (Optional) Calculate rate of climb by calculating component of velocity perpendicular to the horizontal plane, which is determined by reference to standard inertial attitude devices.
(c) From velocity, angle of attack, and sideslip measurements, along with independent measurements of body linear and angular acceleration calculate near-term flight path trajectory.
(d) Adjust the center of the scan to coincide with the projected flight path; increase the focal distance of the laser airspeed unit, and scan in the desired pattern at the increased distance.
(e) Compare the results of the new scan with the initial scan close to the aircraft, and calculate the gust velocities at the new distance.
(f) Repeat steps d. and e. as desired to provide more complete information about the air volume into which the aircraft is flying.
(g) Transmit derived gust data to a pilot warning display and to a digital automatic flight control system, where stored information on aircraft dynamic characteristics is used to determine aircraft control system displacements required to neutralize the oncoming gust.
(h) As the aircraft encounters the gust, input the control displacements to minimize the disturbance.
(i) (Optional) If an indicated velocity profile from any scan shows the characteristics of a vortex from another aircraft, conduct additional vertical scans at different focal distances to locate core, and then conduct similar vertical sweeps at other beam azimuth angles off flight path to define the vortex in three dimensions.
The scanning frequency has not been mentioned above. The appropriate frequency is dependent on the speed of flight; a high speed airplane will fly into a nearby gust more rapidly than a helicopter flying slowly in the nap of the earth. It will usually be desired to have at least a one-second warning to allow for computation time with an on-board computer and to activate the controls. The laser beam travels at the speed of light and the computations are very rapid. The scanning mechanism and focal length changes involve relatively low inertias; with modern servo actuators a scan should be possible in 1/20 second or less and a complete cycle with multiple focal distances should be possible in less than one-half second, and a complete update should be possible two times per second or faster.
The control inputs provided by the Gust Detection System (see FIG. 14) are conveniently provided to an automatic Stability Augmentation System (SAS) having high rates and low authority. Typically the rate, or gain, of such a system is either fixed, varied with airspeed, or varied by means of an adaptive controller. This is discussed in detail in commonly-owned U.S. Pat. No. 4,032,033 (Maciolek, 1977), entitled AUTOMATIC GAIN CONTROL FOR STABILITY AUGMENTATION SYSTEMS, which discloses a technique for automatically varying the gain of a SAS in accordance with gross weight and deviations of the center of gravity of the aircraft.
To practice the invention in the context of a SAS as disclosed in the Maciolek Patent, the control inputs could be provided to close the switches 50, 54, 56 therein which vary the gain of the SAS in stepwise fashion.
In another commonly-owned U.S. Pat. No. 4,213,584 (Tefft et al., 1980), entitled HELICOPTER HOVER STABILITY AND CRUISE GUST EFFECT ALLEVIATION it is disclosed to vary the SAS inputs according to airspeed.
Thus, it can be seen that there are many ways in which the control inputs of this system can be utilized, in conjunction with an existing SAS so that oncoming gust effects can be both anticipated and alleviated.
It should be understood that various changes may be made to the invention without departing from the spirit and scope thereof.

Claims (6)

We claim:
1. A method of detecting air turbulence in the flight path of an aircraft comprising:
providing a variable focal distance laser airspeed unit in the aircraft to project a beam ahead of the aircraft at various focal distances;
measuring the airspeed close to the aircraft at at least two points to determine the velocity and angle of angle of attack of the aircraft relative to still air;
measuring the airspeed at a distance approximately one second's flight time ahead of the aircraft at at least two points to determine the velocity and angle of attack of the aircraft relative to still air; and
determining that there is air turbulence at the distance further ahead of the aircraft based on a discrepancy between the measured airspeed close to the aircraft and the measured airspeed ahead of the aircraft.
2. The method of claim 1, further comprising scanning the beam in a circular pattern ahead of the aircraft to measure the airspeed, wherein the diameter of the circles increases with the distance from the aircraft.
3. The method of claim 1, further comprising scanning the beam in a circular pattern ahead of the aircraft to measure the airspeed, wherein the diameter of the circles remains the same with the distance from the aircraft.
4. The method of claim 1, further comprising scanning the beam in elevation only to measure the airspeed.
5. The method of claim 1, further comprising scanning the beam in azimuth only to measure the airspeed.
6. The method of claim 1, further comprising scanning the beam in a cruciform pattern ahead of the aircraft to measure the airspeed.
US06/749,047 1985-06-26 1985-06-26 Gust detection system Expired - Fee Related US4652122A (en)

Priority Applications (6)

Application Number Priority Date Filing Date Title
US06/749,047 US4652122A (en) 1985-06-26 1985-06-26 Gust detection system
GB8613398A GB2176965B (en) 1985-06-26 1986-06-03 Gust detection system
IT20871/86A IT1204863B (en) 1985-06-26 1986-06-20 METHOD FOR DETECTION OF WIND RAFFIC
DE19863620636 DE3620636A1 (en) 1985-06-26 1986-06-20 METHOD FOR DETECTING AIR TURBULENCE IN THE AIRPLANE OF A PLANE
JP61146748A JPS623665A (en) 1985-06-26 1986-06-23 Method of detecting turbulence of air
FR868609223A FR2584191B1 (en) 1985-06-26 1986-06-25 BURST DETECTION SYSTEM

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US06/749,047 US4652122A (en) 1985-06-26 1985-06-26 Gust detection system

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Cited By (22)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4887213A (en) * 1987-07-31 1989-12-12 The Titan Corporation System for, and methods of, providing for a determination of the movement of an airborne vehicle in the atmosphere
US5170218A (en) * 1991-03-29 1992-12-08 Raytheon Company Apparatus and method for detecting wind direction
US5359888A (en) * 1993-02-16 1994-11-01 The B. F. Goodrich Company Air turbulence and wind shear sensor
US5724125A (en) * 1994-06-22 1998-03-03 Ames; Lawrence L. Determination of wind velocity using a non-vertical LIDAR scan
US6034760A (en) * 1997-10-21 2000-03-07 Flight Safety Technologies, Inc. Method of detecting weather conditions in the atmosphere
WO2001038904A1 (en) * 1999-11-22 2001-05-31 Mitsubishi Denki Kabushiki Kaisha Apparatus for detecting turbulent layer
WO2003021285A2 (en) * 2001-09-04 2003-03-13 Rosemount Aerospace, Inc. System and method of measuring flow velocity in three axes
US6559933B1 (en) * 2001-12-06 2003-05-06 Honeywell International Inc. Method and apparatus for detecting a terrain-masked helicopter
FR2870942A1 (en) * 2004-05-25 2005-12-02 Airbus France Sas ANTICIPATED MEASUREMENT SYSTEM FOR TURBULENCE UPSTREAM OF AN AIRCRAFT
US20060061753A1 (en) * 2002-10-10 2006-03-23 Michael Harris Bistatic laser radar apparatus
US20070035135A1 (en) * 2004-05-07 2007-02-15 Mitsubishi Denki Kabushiki Kaisha Wind power generation evaluation system and predictive control service system for use with wind power generator
US7414702B1 (en) * 2006-06-01 2008-08-19 Adtech, Inc. Reverse logic optical acquisition system and method
US20080251648A1 (en) * 2005-10-11 2008-10-16 Airbus France Method and Device for Attenuating on an Aircraft the Effects of a Vertical Turbulence
US20100128252A1 (en) * 2008-11-24 2010-05-27 Airbus Operations (Sas) Method and device for optimizing the orientation of a laser anemometer on an aircraft
US20110007299A1 (en) * 2008-01-16 2011-01-13 Koninklijke Philips Electronics N.V. Laser sensor system based on self-mixing interference
US20110291879A1 (en) * 2009-02-06 2011-12-01 Thales System and method for detecting and determining remote atmospheric anomalies
EP2330440A3 (en) * 2009-12-07 2012-01-18 Japan Aerospace Exploration Agency Airborne device for preventing turbulence-induced accidents
DE102011112121A1 (en) * 2011-09-02 2013-03-07 Deutsches Zentrum für Luft- und Raumfahrt e.V. Method for determining fluid flow of data, involves calculating spatial course of swirl axis of vortex flow in dependence on vortex flow induced flow measurement data and measuring position of vortex-flow-induced flow measurement data
US20160123896A1 (en) * 2014-10-29 2016-05-05 SUNMOON UNIVERSITY Industry-University Cooperation Apparatus for inspecting curvature
US20180259443A1 (en) * 2017-03-07 2018-09-13 Fuji Xerox Co., Ltd. Environmental measurement system and non-transitory computer readable medium
US10613229B2 (en) 2018-08-24 2020-04-07 Ball Aerospace & Technologies Corp. Compact quadrature mach-zehnder interferometer
JPWO2021009832A1 (en) * 2019-07-16 2021-11-25 三菱電機株式会社 Eddy detection device and eddy detection method

Families Citing this family (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE4021820A1 (en) * 1990-07-09 1992-01-16 Diehl Gmbh & Co Mine with search and detect sensor - has adjustable mirror for energy-efficient search cone adjustment
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DE102004015459B4 (en) * 2004-03-30 2008-01-31 Deutsches Zentrum für Luft- und Raumfahrt e.V. Measuring device with a separator and use of a separator
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Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3528741A (en) * 1964-06-26 1970-09-15 Litton Systems Inc Apparatus for measuring velocity by the detection of scattered light
US3984685A (en) * 1975-12-03 1976-10-05 Nasa Wind measurement system
US3998552A (en) * 1974-08-19 1976-12-21 Hss, Inc. Instrument responsive to back-scattered or back-reflected radiation having passive system for range correction
US4167329A (en) * 1977-12-12 1979-09-11 Raytheon Company Focussed doppler radar
US4359640A (en) * 1979-07-18 1982-11-16 Aero-Geophysical, Inc. Clear air turbulence detection
US4585341A (en) * 1982-07-02 1986-04-29 National Research Development Corporation Wind shear detection
US4589070A (en) * 1982-10-25 1986-05-13 R & D Associates Airborne wind shear response system

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3984686A (en) * 1975-12-03 1976-10-05 Nasa Focused laser doppler velocimeter
DE2841499C2 (en) * 1978-09-23 1984-04-12 Messerschmitt-Bölkow-Blohm GmbH, 8000 München Laser air value sensor
US4346990A (en) * 1979-09-07 1982-08-31 The United States Of America As Represented By The Administrator Of The National Aeronautics And Space Administration Scanning afocal laser velocimeter projection lens system
GB2123240B (en) * 1982-07-02 1986-01-02 Secr Defence Wind shear detection by laser doppler velocimetry

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3528741A (en) * 1964-06-26 1970-09-15 Litton Systems Inc Apparatus for measuring velocity by the detection of scattered light
US3998552A (en) * 1974-08-19 1976-12-21 Hss, Inc. Instrument responsive to back-scattered or back-reflected radiation having passive system for range correction
US3984685A (en) * 1975-12-03 1976-10-05 Nasa Wind measurement system
US4167329A (en) * 1977-12-12 1979-09-11 Raytheon Company Focussed doppler radar
US4359640A (en) * 1979-07-18 1982-11-16 Aero-Geophysical, Inc. Clear air turbulence detection
US4585341A (en) * 1982-07-02 1986-04-29 National Research Development Corporation Wind shear detection
US4589070A (en) * 1982-10-25 1986-05-13 R & D Associates Airborne wind shear response system

Cited By (41)

* Cited by examiner, † Cited by third party
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US4887213A (en) * 1987-07-31 1989-12-12 The Titan Corporation System for, and methods of, providing for a determination of the movement of an airborne vehicle in the atmosphere
US5170218A (en) * 1991-03-29 1992-12-08 Raytheon Company Apparatus and method for detecting wind direction
US5359888A (en) * 1993-02-16 1994-11-01 The B. F. Goodrich Company Air turbulence and wind shear sensor
US5724125A (en) * 1994-06-22 1998-03-03 Ames; Lawrence L. Determination of wind velocity using a non-vertical LIDAR scan
US6034760A (en) * 1997-10-21 2000-03-07 Flight Safety Technologies, Inc. Method of detecting weather conditions in the atmosphere
US6505508B1 (en) 1999-11-22 2003-01-14 Mitsubishi Denki Kabushiki Kaisha Apparatus for detecting turbulent layer
WO2001038904A1 (en) * 1999-11-22 2001-05-31 Mitsubishi Denki Kabushiki Kaisha Apparatus for detecting turbulent layer
AU2002322525B2 (en) * 2001-09-04 2008-04-03 Rosemount Aerospace, Inc. System and method of measuring flow velocity in three axes
WO2003021285A2 (en) * 2001-09-04 2003-03-13 Rosemount Aerospace, Inc. System and method of measuring flow velocity in three axes
WO2003021285A3 (en) * 2001-09-04 2003-11-27 Rosemount Aerospace Inc System and method of measuring flow velocity in three axes
US6559933B1 (en) * 2001-12-06 2003-05-06 Honeywell International Inc. Method and apparatus for detecting a terrain-masked helicopter
US8422000B2 (en) * 2002-10-10 2013-04-16 Qinetiq Limited Bistatic laser radar apparatus
US20060061753A1 (en) * 2002-10-10 2006-03-23 Michael Harris Bistatic laser radar apparatus
US20070035135A1 (en) * 2004-05-07 2007-02-15 Mitsubishi Denki Kabushiki Kaisha Wind power generation evaluation system and predictive control service system for use with wind power generator
FR2870942A1 (en) * 2004-05-25 2005-12-02 Airbus France Sas ANTICIPATED MEASUREMENT SYSTEM FOR TURBULENCE UPSTREAM OF AN AIRCRAFT
US7499181B2 (en) 2004-05-25 2009-03-03 Airbus France System for measurement of projected turbulence downwind of an aircraft
WO2006016075A1 (en) * 2004-05-25 2006-02-16 Airbus France System for measurement of projected turbulence downwind of an aircraft
CN1957267B (en) * 2004-05-25 2011-03-09 法国空中客车公司 System for pretesting raising turbulence of an aircraft
US20080251648A1 (en) * 2005-10-11 2008-10-16 Airbus France Method and Device for Attenuating on an Aircraft the Effects of a Vertical Turbulence
US8359130B2 (en) * 2005-10-11 2013-01-22 Airbus Operations Sas Method and device for attenuating on an aircraft the effects of a vertical turbulence
US7414702B1 (en) * 2006-06-01 2008-08-19 Adtech, Inc. Reverse logic optical acquisition system and method
US20110007299A1 (en) * 2008-01-16 2011-01-13 Koninklijke Philips Electronics N.V. Laser sensor system based on self-mixing interference
EP2243042B1 (en) * 2008-01-16 2015-08-26 Philips Intellectual Property & Standards GmbH Laser sensor system based on self-mixing interference
US8692979B2 (en) 2008-01-16 2014-04-08 Koninklijke Philips N.V. Laser sensor system based on self-mixing interference
FR2938922A1 (en) * 2008-11-24 2010-05-28 Airbus France METHOD AND DEVICE FOR OPTIMIZING THE ORIENTATION OF A LASER ANEMOMETER ON AN AIRCRAFT
US20100128252A1 (en) * 2008-11-24 2010-05-27 Airbus Operations (Sas) Method and device for optimizing the orientation of a laser anemometer on an aircraft
US8467037B2 (en) 2008-11-24 2013-06-18 Airbus Operations Sas Method and device for optimizing the orientation of a laser anemometer on an aircraft
US8884808B2 (en) * 2009-02-06 2014-11-11 Thales System and method for detecting and determining remote atmospheric anomalies
CN102308222A (en) * 2009-02-06 2012-01-04 塔莱斯公司 System and method for detecting and determining remote atmospheric anomalies
US20110291879A1 (en) * 2009-02-06 2011-12-01 Thales System and method for detecting and determining remote atmospheric anomalies
EP2330440A3 (en) * 2009-12-07 2012-01-18 Japan Aerospace Exploration Agency Airborne device for preventing turbulence-induced accidents
DE102011112121B4 (en) * 2011-09-02 2014-05-15 Deutsches Zentrum für Luft- und Raumfahrt e.V. flow determination
DE102011112121A1 (en) * 2011-09-02 2013-03-07 Deutsches Zentrum für Luft- und Raumfahrt e.V. Method for determining fluid flow of data, involves calculating spatial course of swirl axis of vortex flow in dependence on vortex flow induced flow measurement data and measuring position of vortex-flow-induced flow measurement data
US20160123896A1 (en) * 2014-10-29 2016-05-05 SUNMOON UNIVERSITY Industry-University Cooperation Apparatus for inspecting curvature
US9562763B2 (en) * 2014-10-29 2017-02-07 Sunmoon University Industry—University Cooperation Apparatus for inspecting curvature
US20180259443A1 (en) * 2017-03-07 2018-09-13 Fuji Xerox Co., Ltd. Environmental measurement system and non-transitory computer readable medium
CN108574944A (en) * 2017-03-07 2018-09-25 富士施乐株式会社 Environment measurement system and environment measurement method
US10908071B2 (en) * 2017-03-07 2021-02-02 Fuji Xerox Co., Ltd. Environmental measurement system and non-transitory computer readable medium
US10613229B2 (en) 2018-08-24 2020-04-07 Ball Aerospace & Technologies Corp. Compact quadrature mach-zehnder interferometer
JPWO2021009832A1 (en) * 2019-07-16 2021-11-25 三菱電機株式会社 Eddy detection device and eddy detection method
JP7012907B2 (en) 2019-07-16 2022-01-28 三菱電機株式会社 Eddy detection device and eddy detection method

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GB2176965A (en) 1987-01-07
FR2584191B1 (en) 1990-07-13
FR2584191A1 (en) 1987-01-02
GB8613398D0 (en) 1986-07-09
GB2176965B (en) 1989-09-20
IT8620871A0 (en) 1986-06-20
JPS623665A (en) 1987-01-09
DE3620636A1 (en) 1987-01-02
IT1204863B (en) 1989-03-10

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